Weight loss increases skeletal muscle mitochondrial energy efficiency in obese mice

Patrick J. Ferrara, Marisa J. Lang, Jordan M. Johnson, Shinya Watanabe, Kelsey L. McLaughlin, John Alan Maschek, Anthony R.P. Verkerke, Piyarat Siripoksup, Amandine Chaix, James E. Cox, Kelsey H. Fisher-Wellman, Katsuhiko Funai

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Life Metabolism ›› 2023, Vol. 2 ›› Issue (2) : 56-67. DOI: 10.1093/lifemeta/load014
Original Article

Weight loss increases skeletal muscle mitochondrial energy efficiency in obese mice

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Abstract

Weight loss from an overweight state is associated with a disproportionate decrease in whole-body energy expenditure that may contribute to the heightened risk for weight regain. Evidence suggests that this energetic mismatch originates from lean tissue. Although this phenomenon is well documented, the mechanisms have remained elusive. We hypothesized that increased mitochondrial energy efficiency in skeletal muscle is associated with reduced expenditure under weight loss. Wildtype (WT) male C57BL6/N mice were fed with high-fat diet for 10 weeks, followed by a subset of mice that were maintained on the obesogenic diet (OB) or switched to standard chow to promote weight loss (WL) for additional 6 weeks. Mitochondrial energy efficiency was evaluated using high-resolution respirometry and fluorometry. Mass spectrometric analyses were employed to describe the mitochondrial proteome and lipidome. Weight loss promoted ~50% increase in the efficiency of oxidative phosphorylation (ATP produced per O2 consumed, or P/O) in skeletal muscle. However, Weight loss did not appear to induce significant changes in mitochondrial proteome, nor any changes in respiratory supercomplex formation. Instead, it accelerated the remodeling of mitochondrial cardiolipin (CL) acyl-chains to increase tetralinoleoyl CL (TLCL) content, a species of lipids thought to be functionally critical for the respiratory enzymes. We further show that lowering TLCL by deleting the CL transacylase tafazzin was sufficient to reduce skeletal muscle P/O and protect mice from diet-induced weight gain. These findings implicate skeletal muscle mitochondrial efficiency as a novel mechanism by which weight loss reduces energy expenditure in obesity.

Keywords

energy efficiency / energy expenditure / mitochondria / oxidative phosphorylation / phospholipids / weight loss

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Patrick J. Ferrara, Marisa J. Lang, Jordan M. Johnson, Shinya Watanabe, Kelsey L. McLaughlin, John Alan Maschek, Anthony R.P. Verkerke, Piyarat Siripoksup, Amandine Chaix, James E. Cox, Kelsey H. Fisher-Wellman, Katsuhiko Funai. Weight loss increases skeletal muscle mitochondrial energy efficiency in obese mice. Life Metabolism, 2023, 2(2): 56‒67 https://doi.org/10.1093/lifemeta/load014

References

[1]
Weinsier R . L, Nelson KM, Hensrud DD et al. Metabolic predictors of obesity. Contribution of resting energy expenditure, thermic effect of food, and fuel utilization to four-year weight gain of post-obese and never-obese women. J Clin Invest 1995; 95: 980- 5.
[2]
Hall KD , Kahan S . Maintenance of lost weight and long-term management of obesity. Med Clin North Am 2018; 102: 183- 97.
[3]
Fothergill E , Guo J , Howard L et al. Persistent metabolic adaptation 6 years after “The Biggest Loser” competition. Obesity (Silver Spring) 2016; 24: 1612- 9.
[4]
Apfelbaum M , Bostsarron J , Lacatis D . Effect of caloric restriction and excessive caloric intake on energy expenditure. Am J Clin Nutr 1971; 24: 1405- 9.
[5]
Bray GA . Effect of caloric restriction on energy expenditure in obese patients. Lancet 1969; 2: 397- 8.
[6]
Bessard T , Schutz Y , Jequier E . Energy expenditure and postprandial thermogenesis in obese women before and after weight loss. Am J Clin Nutr 1983; 38: 680- 93.
[7]
Astrup A , Gøtzsche PC , van de Werken K et al. Meta-analysis of resting metabolic rate in formerly obese subjects. Am J Clin Nutr 1999; 69: 1117- 22.
[8]
Ravussin Y , Gutman R , Diano S et al. Effects of chronic weight perturbation on energy homeostasis and brain structure in mice. Am J Physiol Regul Integr Comp Physiol 2011; 300: R1352- 62.
[9]
Levin BE , Keesey RE . Defense of differing body weight set points in diet-induced obese and resistant rats. Am J Physiol 1998; 274: R412- 9.
[10]
Ravussin Y , Edwin E , Gallop M et al. Evidence for a non-leptin system that defends against weight gain in overfeeding. Cell Metab 2018; 28: 289- 99.e5.
[11]
Joyner MJ , Coyle EF . Endurance exercise performance: the physiology of champions. J Physiol 2008; 586: 35- 44.
[12]
Whipp BJ , Wasserman K . Efficiency of muscular work. J Appl Physiol 1969; 26: 644- 8.
[13]
Zoladz JA , Koziel A , Woyda-Ploszczyca A et al. Endurance training increases the efficiency of rat skeletal muscle mitochondria. Pflugers Arch 2016; 468: 1709- 24.
[14]
Murray AJ , Horscroft JA . Mitochondrial function at extreme high altitude. J Physiol 2016; 594: 1137- 49.
[15]
Leibel RL , Rosenbaum M , Hirsch J . Changes in energy expenditure resulting from altered body weight. N Engl J Med 1995; 332: 621- 8.
[16]
Levine JA , Eberhardt NL , Jensen MD . Role of nonexercise activity thermogenesis in resistance to fat gain in humans. Science 1999; 283: 212- 4.
[17]
Rosenbaum M , Vandenborne K , Goldsmith R et al. Effects of experimental weight perturbation on skeletal muscle work efficiency in human subjects. Am J Physiol Regul Integr Comp Physiol 2003; 285: R183- 92.
[18]
Goldsmith R , Joanisse DR , Gallagher D et al. Effects of experimental weight perturbation on skeletal muscle work efficiency, fuel utilization, and biochemistry in human subjects. Am J Physiol Regul Integr Comp Physiol 2010; 298: R79- 88.
[19]
Baldwin KM , Joanisse DR , Haddad F et al. Effects of weight loss and leptin on skeletal muscle in human subjects. Am J Physiol Regul Integr Comp Physiol 2011; 301: R1259- 66.
[20]
Coen PM , Menshikova E . V, Distefano G et al. Exercise and weight loss improve muscle mitochondrial respiration, lipid partitioning, and insulin sensitivity after gastric bypass surgery. Diabetes 2015; 64: 3737- 50.
[21]
Rabøl R , Svendsen PF , Skovbro M et al. Reduced skeletal muscle mitochondrial respiration and improved glucose metabolism in nondiabetic obese women during a very low calorie dietary intervention leading to rapid weight loss. Metabolism 2009; 58: 1145- 52.
[22]
Menshikova EV , Ritov VB , Dube JJ et al. Calorie restriction-induced weight loss and exercise have differential effects on skeletal muscle mitochondria despite similar effects on insulin sensitivity. J Gerontol A Biol Sci Med Sci 2017; 73: 81- 7.
[23]
Toledo FG , Menshikova EV , Azuma K et al. Mitochondrial capacity in skeletal muscle is not stimulated by weight loss despite increases in insulin action and decreases in intramyocellular lipid content. Diabetes 2008; 57: 987- 94.
[24]
Virtue S , Even P , Vidal-Puig A . Below thermoneutrality, changes in activity do not drive changes in total daily energy expenditure between groups of mice. Cell Metab 2012; 16: 665- 71.
[25]
Chouchani ET , Kazak L , Spiegelman BM . New advances in adaptive thermogenesis: UCP1 and beyond. Cell Metab 2019; 29: 27- 37.
[26]
Verkerke ARP , Ferrara PJ , Lin CT et al. Phospholipid methylation regulates muscle metabolic rate through Ca2+ transport efficiency. Nat Metab 2019; 1: 876- 85.
[27]
Paran CW , Zou K , Ferrara PJ et al. Lipogenesis mitigates dysregulated sarcoplasmic reticulum calcium uptake in muscular dystrophy. Biochim Biophys Acta 2015; 1851: 1530- 8.
[28]
McLaughlin KL , Kew KA , McClung JM et al. Subcellular proteomics combined with bioenergetic phenotyping reveals protein biomarkers of respiratory insufficiency in the setting of proofreading-deficient mitochondrial polymerase.Sci Rep 2020; 10: 3603.
[29]
Heden TD , Neufer PD , Funai K . Looking beyond structure: membrane phospholipids of skeletal muscle mitochondria. Trends Endocrinol Metab 2016; 27: 553- 62.
[30]
Funai K , Summers SA , Rutter J . Reign in the membrane: how common lipids govern mitochondrial function. Curr Opin Cell Biol 2020; 63: 162- 73.
[31]
Heden TD , Johnson JM , Ferrara PJ et al. Mitochondrial PE potentiates respiratory enzymes to amplify skeletal muscle aerobic capacity. Sci Adv 2019; 5: eaax8352.
[32]
Pennington ER , Funai K , Brown DA et al. The role of cardiolipin concentration and acyl chain composition on mitochondrial inner membrane molecular organization and function. Biochim Biophys Acta Mol Cell Biol Lipids 2019; 1864: 1039- 52.
[33]
Zhang M , Mileykovskaya E , Dowhan W . Gluing the respiratory chain together. Cardiolipin is required for supercomplex formation in the inner mitochondrial membrane. J Biol Chem 2002; 277: 43553- 6.
[34]
Johnson JM , Ferrara PJ , Verkerke ARP et al. Targeted overexpression of catalase to mitochondria does not prevent cardioskeletal myopathy in Barth syndrome. J Mol Cell Cardiol 2018; 121: 94- 102.
[35]
Prola A , Blondelle J , Vandestienne A et al. Cardiolipin content controls mitochondrial coupling and energetic efficiency in muscle. Sci Adv 2021; 7: eabd6322.
[36]
Cole LK , Mejia EM , Vandel M et al. Impaired cardiolipin biosynthesis prevents hepatic steatosis and diet-induced obesity. Diabetes 2016; 65: 3289- 300.
[37]
Soustek MS , Falk DJ , Mah CS et al. Characterization of a transgenic short hairpin RNA-induced murine model of Tafazzin deficiency. Hum Gene Ther 2011; 22: 865- 71.
[38]
Andersen P , Saltin B . Maximal perfusion of skeletal muscle in man. J Physiol 1985; 366: 233- 49.
[39]
Funai K , Semenkovich CF . Skeletal muscle lipid flux: running water carries no poison. Am J Physiol Endocrinol Metab 2011; 301: E245- 51.
[40]
Zurlo F , Larson K , Bogardus C et al. Skeletal muscle metabolism is a major determinant of resting energy expenditure. J Clin Invest 1990; 86: 1423- 7.
[41]
Moullan N , Mouchiroud L , Wang X et al. Tetracyclines disturb mitochondrial function across eukaryotic models: a call for caution in biomedical research. Cell Rep 2015; 10: 1681- 91.
[42]
Mogensen M , Bagger M , Pedersen PK et al. Cycling efficiency in humans is related to low UCP3 content and to type I fibres but not to mitochondrial efficiency. J Physiol 2006; 571: 669- 81.
[43]
Chicco AJ , Le CH , Gnaiger E et al. Adaptive remodeling of skeletal muscle energy metabolism in high-altitude hypoxia: lessons from AltitudeOmics. J Biol Chem 2018; 293: 6659- 71.
[44]
Acehan D , Vaz F , Houtkooper RH et al. Cardiac and skeletal muscle defects in a mouse model of human Barth syndrome. J Biol Chem 2011; 286: 899- 908.
[45]
Funai K , Song H , Yin L et al. Muscle lipogenesis balances insulin sensitivity and strength through calcium signaling. J Clin Invest 2013; 123: 1229- 40.
[46]
Lark DS , Torres MJ , Lin CT et al. Direct real-time quantification of mitochondrial oxidative phosphorylation efficiency in permeabilized skeletal muscle myofibers. Am J Physiol Cell Physiol 2016; 311: C239- 45.
[47]
Bers DM , Patton CW , Nuccitelli R . A practical guide to the preparation of Ca2+ buffers. Methods Cell Biol 2010; 99: 1- 26.
[48]
Simonides WS , van Hardeveld C . An assay for sarcoplasmic reticulum Ca2+-ATPase activity in muscle homogenates. Anal Biochem 1990; 191: 321- 31.
[49]
Heden TD , Ryan TE , Ferrara PJ et al. Greater oxidative capacity in primary myotubes from endurance-trained women. Med Sci Sports Exerc 2017; 49: 2151- 7.
[50]
McLaughlin KL , Hagen JT , Coalson HS et al. Novel approach to quantify mitochondrial content and intrinsic bioenergetic efficiency across organs. Sci Rep 2020; 10: 17599.
[51]
Calvo SE , Clauser KR , Mootha VK . MitoCarta2.0: an updated inventory of mammalian mitochondrial proteins. Nucleic Acids Res 2016; 44: D1251- 7.

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2023 The Author(s) 2023. Published by Oxford University Press on behalf of Higher Education Press.
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